Claims
- 1. An optical transmission method comprising:
selecting a laser from an array of lasers, each laser emitting light at differing wavelengths; establishing an optical path from the laser to an optical output, such that light from the laser is transmitted into an optical output; and adjusting the optical path to maximize output power of the emitted light at the optical output.
- 2-94 (Cancelled)
- 95. An optical apparatus comprising:
an array of lasers on a semiconductor substrate; a microelectromechanical (MEMS) mirror receiving light generated from at least one of the lasers of the array of lasers and directing the light towards an output path; an optical fiber receiving at least a portion of the light in the output path; a beamsplitter in the output path between the MEMS mirror and the optical fiber, the beamsplitter directing some of the light out of the output path; a detector receiving at least some of the light directed out of the output path; and a controller receiving a signal representative of an aspect of the light received by the detector and generating a control signal for use in positioning of the MEMS mirror.
- 96. The optical apparatus of claim 95 wherein the signal representative of an aspect of the light received by the detector is a signal representative of a measure of power of the light received by the detector.
- 97. The optical apparatus of claim 96 wherein the controller is configured to generate the control signal to position the MEMS mirror to maximize the power of the light received by the detector.
- 98. The optical apparatus of claim 97 wherein the controller is further configured to generate the control signal to move the MEMS mirror a slight amount in a first direction and to determine if the measure of power of the light received by the detector has increased.
- 99. The optical apparatus of claim 98 wherein the controller is further configured to generate the control signal to move the MEMS mirror a slight amount in a second direction and to determine if the measure of power of the light received by the detector has increased.
- 100. The optical apparatus of claim 99 wherein the second direction is orthogonal to the first direction.
- 101. The optical apparatus of claim 97 wherein the controller is configured to generate the control signal to cause the position of the MEMS mirror to wander and to determine the position of the MEMS mirror at which the measure of power of light received by the detector is maximized.
- 102. The optical apparatus of claim 95 wherein the detector is a quad detector.
- 103. The optical apparatus of claim 102 wherein the signal representative of an aspect of the light received by the detector is a signal representative of the position of the light received by the detector.
- 104. The optical apparatus of claim 103 wherein the controller is configured to generate the control signal to position the MEMS mirror based on ratios of power received by different sections of the quad detector.
- 105. An optical transmission system comprising:
a plurality of lasers in a multi-wavelength laser array on a common substrate, the lasers being individually addressable with at least some of the lasers designed to emit light at different wavelengths; an optical element comprising:
a collimating lens collimating light from the multi-wavelength laser array; a micro-mechanical mirror positionable to direct light from a selectable one of the lasers of the multi-wavelength laser array; and a beamsplitter splitting the light directed by the micro-mechanical mirror into at least two portions; an optical fiber receiving a first portion of the light split by the beamsplitter; a detector receiving a second portion of the light split by the beamsplitter; and a controller receiving a signal indicative of an aspect of light received by the detector and providing a signal indicative of desired micro-mechanical mirror position.
- 106. The optical transmission system of claim 105 wherein the signal representative of an aspect of light received by the detector is a signal representative of a measure of power of the light received by the detector.
- 107. The optical transmission system of claim 106 wherein the controller is configured to provide the signal indicative of desired micro-mechanical mirror position to maximize the power of the light received by the detector.
- 108. The optical transmission system of claim 107 wherein the controller is further configured to provide the signal indicative of desired micro-mechanical mirror position to move the micro-mechanical mirror a slight amount in a first direction and to determine if the power of the light received by the detector has increased.
- 109. The optical transmission system of claim 108 wherein the controller is further configured to provide the signal indicative of desired micro-mechanical mirror position to move the micro-mechanical mirror a slight amount in a second direction and to determine if the power of the light received by the detector has increased.
- 110. The optical transmission system of claim 109 wherein the second direction is orthogonal to the first direction.
- 111. The optical transmission system of claim 107 wherein the controller is configured to provide the signal indicative of desired micro-mechanical mirror position to cause the position of the micro-mechanical mirror to wander and to determine the position of the micro-mechanical mirror at which the power of light received by the detector is maximized.
- 112. The optical transmission system of claim 105 wherein the detector is a quad detector.
- 113. The optical transmission system of claim 112 wherein the signal representative of an aspect of the light received by the detector is a signal representative of the position of the light received by the detector.
- 114. The optical transmission system of claim 113 wherein the controller is configured to provide the signal indicative of desired micro-mechanical mirror position to position the micro-mechanical mirror based on ratios of power received by different sections of the quad detector.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. provisional application No. 60/244,689 filed Oct. 30, 2000, 60/244,738 filed Oct. 30, 2000, 60/311,621 filed Aug. 8, 2001, 60/311,443 filed Aug. 8, 2001 and U.S. patent application entitled Error Signal For Fiber Coupling filed Oct. 29, 2001, which are hereby incorporated by reference as if set forth in full herein.
Provisional Applications (5)
|
Number |
Date |
Country |
|
60244689 |
Oct 2000 |
US |
|
60244738 |
Oct 2000 |
US |
|
60311621 |
Aug 2001 |
US |
|
60311443 |
Aug 2001 |
US |
|
60340975 |
Oct 2001 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
10002703 |
Oct 2001 |
US |
Child |
10874978 |
Jun 2004 |
US |